543 Analytische Chemie
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A closer look at long-established drugs: enantioselective protein binding and stability studies
(2023)
The aim of this work was to investigate older, established drugs. The extent of the protein binding of chiral ephedra alkaloids to AGP and of ketamine to albumin was determined. Since enantiomers of these drugs are individual available, the focus was on possible enantioselective binding and structural moieties involved in the binding.
Previously published work suggested that ephedrine and pseudoephedrine can bind stereoselectively to proteins other than albumin in serum. For the determination of the extent of protein binding, the established ultrafiltration with subsequent chiral CE analysis was used. To determine the influence of basicity on binding, the drugs methylephedrine and norephedrine were also analyzed. Drug binding to AGP increased with increasing basicity as follows: norephedrine < methylephedrine < ephedrine < pseudoephedrine. pKaff was determined both graphically using the Klotz plot and mathematical indicating a low affinity of the ephedra alkaloids to AGP. Using STD-NMR spectroscopy experiments the aromatic protons and the C-CH3 side chain were shown to be most strongly involved in binding, which could be confirmed by molecular docking experiments in more detail. For all drugs, van der Waals-, π π , cationic interactions, hydrogen bonds, and a formation of a salt bridge were observed. The individual enantiomers showed no significant differences and thus the binding of ephedra alkaloids to AGP is not significant.
In contrast to the ephedra alkaloids, the possible enantioselective binding to albumin was investigated for R and S ketamine. Again, ultrafiltration followed by CE analysis was performed. The binding of ketamine to one main binding site could be identified. A non-linear fit was used for the determination of pKaff. Using the NMR methods STD-NMR, waterLOGSY-NMR, and CPMG-NMRspectroscopy: the aromatic protons as well as the protons of the NCH3 methyl group showed the largest signal intensity changes, while the cyclohexanone protons showed the smallest changes. pKaff was also determined by the change in the chemical shift at different drug-protein ratios. These obtained values confirm the values obtained from ultrafiltration. Based on this, ketamine is classified as a low-affinity ligand to albumin. There were no significant differences between the individual enantiomers and thus the binding of ketamine to albumin is not a stereoselective process.
Using statistical design of experiments an efficient chiral CE method for determining the extent of protein binding of R and S ketamine to albumin was developed and validated according to ICH Q2 (R1) guideline.
The stability of ketamine was also investigated because a yellowish discoloration of an aqueous solution of ketamine developed under heat. XRPD investigations showed the same crystal structure for all batches examined. An untargeted screening using LC HRMS as well as LC UV measurements showed no degradation of ketamine or the presence of impurities in stress and non-stressed ketamine solutions, confirming the stability of ketamine under the stress conditions investigated. The lower the quality of the water used in the stress tests, the more intense the yellow discoloration occurred. The impurity or the mechanism that causes the yellow discoloration could not be identified.
All presented studies aimed on the improvement of the quality analysis of already monographed drugs. Thereby different LC methods were applied and coupled to i.e., the UV/VIS detector, the CAD or a hyphenation of these detectors, respectively. The choice of the chromatographic system including the detector was largely dependent on the physicochemical properties of the respective analytes.
With the risk-assessment report on the API cetirizine we presented an exemplary tool, that can help to minimize the risk of the occurrence of unexpected impurities. An in- deep analysis of each step within synthesis pathway by means of reaction matrices of all compounds was performed. It is essential to understand the complete impurity profile of all reactants, solvents, and catalysts and to include them in the matrix. Finally, the API of this synthesis was checked if all impurities are identified by this tool. Of note, a shortcoming of such a targeted approach is that impurities can still occur, but they are not captured. This disadvantage can be partially compensated by non-targeted approaches if they are performed in parallel with the other studies that represent most of the impurities. However, this work also shows that even in a supposedly simple synthesis, potentially hundreds of by-products can be formed. For each of them, it must be decided individually whether their formation is probable or how their quantity can be minimized in order to obtain APIs, that are as pure as possible.
In the dapsone project it was aimed to replace the existing old Ph. Eur. TLC method with a modern RP-HPLC method. This was successful and since Ph. Eur. 10.6, the method developed in this work, became a valid monograph. Within the revision process of the monograph, the individual limits for impurities were tightened. However, this new method needs HPLC instrumentation, suitable to perform gradients. As this is not always available in all control laboratories, we also developed an alternative, more simple method using two different isocratic runs for the impurity analysis. The obtained batch results of both, the new pharmacopoeial method and the more simple one, were in a comparable order of magnitude. Furthermore, within the method development stage of the Ph. Eur. method, we could identify one unknown impurity of the impurity reference by high-resolution MS/MS analysis.
Also, in the baclofen project it was aimed to replace the existing Ph. Eur. method with the introduction of an additional impurity to be quantified. A corresponding method was developed and validated. However, due to the harmonization process of the pharmacopoeias, it is currently not used. In addition, we tried to find further, non- 116
SUMMARY
chromophoric impurities by means of the CAD. However, except for one counterion of an impurity, no further impurities were found. Also, the aforementioned new impurity could not be detected above the reporting threshold in the batches analyzed. As the only individually specified impurity A is also present at a low level, it can be concluded that the examined batches of baclofen are very pure.
The use of universal detectors, such as the CAD can be particularly interesting for compounds with no chromophore or those with only a weak chromophore. Therefore, we decided to take a closer look at the impurity profile of acarbose. Currently, acarbose and its impurities are being studied by low wavelength UV detection at 210 nm. Therefore, the question arose whether there are no other impurities in the API that do not show absorption at this wavelength. CAD, which offers consistent detection properties for all non-volatile compounds, is ideally suited for this purpose. However, it was not so easy to use the CAD together with the UV detector, for example, as a hyphenated detection technique, because the Ph. Eur. method uses phosphate buffers. However, this is non-volatile and therefore inappropriate for the CAD. Therefore, an attempt was made to replace the buffer with a volatile one. However, since this did not lead to satisfactory results and rather the self-degradation process of the stationary phase used could be observed by means of the CAD, it was decided to switch to alternative stationary phases. A column screening also revealed further difficulties with acarbose and its impurities: they show an epimerization reaction at the end of the sugar chain. However, since one wanted to have uniform peaks in the corresponding chromatograms, one had to accelerate this reaction significantly to obtain only one peak for each component. This was best achieved by using two stationary phases: PGC and Amide-HILIC. Impurity-profiling methods could be developed on each of the two phases. In addition, as expected, new impurities could be detected, albeit at a low level. Two of them could even be identified by spiking experiments as the sugar fragments maltose and maltotriose.
Taken together, it can be concluded, that this work has contributed significantly to the improvement of the quality analysis of monographed drugs. In addition to the presented general tool for the identification of potential impurities, one of the methods developed, had already been implemented to the Ph. Eur. In an effort to improve the CAD's universal detection capabilities, additional methods have also been developed. Further, new improved methods for the impurity profiling are ready to use.
The charged aerosol detector (CAD) is an aerosol-based detector employed in liquid chromatography which has become established in the field of pharmaceutical analysis due to its outstanding performance characteristics, e.g. the almost uniform response for nonvolatile analytes. Owing to its principle of detection, the response of the CAD depends on the volatility of a compound and is inherently nonlinear. However, the newly implemented instrumental settings evaporation temperature and power function value (PFV) are valuable tools to overcome some of these drawbacks and can even enhance the detector’s capabilities when adjusted properly.
This thesis aimed to evaluate the impact of the new instrumental settings on the CAD performance. Additionally, the influence of modern separation techniques for small polar compounds on the CAD was assessed and the applicability of hyphenated UV-CAD techniques explored. The optimization strategies derived from the evaluation procedures and the conjunction of the instrumental and chromatographic techniques investigated were utilized for the challenging impurity profiling of amino acids and amino acid-like drugs.
The results of the method validation procedures confirmed the broad applicability of the CAD in the pharmaceutical analysis of nonvolatile compounds, supported by satisfactory sensitivity and reproducibility for meeting the regulatory requirements with respect to the ICH guidelines Q2(R1) and Q3A(R2). The limits of applicability include the analysis of semivolatile compounds, and the method transfer between current and legacy CAD models. Further advances in the definition and standardization of allowed ranges for the instrumental settings and the establishment of general optimization procedures in the method development could lead to a more widespread use of the detection technique in compendial methods.
High-resolution nuclear magnetic resonance (NMR) spectroscopy is used in structure elucidation and qualitative as well as quantitative examination of product components. Despite the worldwide development of numerous innovative NMR spectroscopic methods, several official methods that analyze specific substances and do not represent a holistic analysis, are still in use for the quality control of drugs, food and chemicals. Thus, counterfeit or contaminated products of inferior quality can be brought onto the market and distributed despite previous quality controls. To prevent this, three NMR spectroscopic methods have been developed within the scope of this work (1) to study the peroxide value in vegetable and animal oils, (2) for the qualitative and quantitative analysis of metal cations and (3) to determine the enantiomeric excess in chiral alcohols. In oil analysis, titration methods are used to determine the bulk quality parameters such as peroxide value, which represents the concentration of peroxides. Titrations show several drawbacks, such as the need of a large amount of sample and solvents, cross reactions and the low robustness. Thus, an alternative NMR spectroscopic method was developed to improve the peroxide analysis by using triphenylphosphine as a derivatization reagent, which reacts with peroxides in a stoichiometric ratio of 1:1 forming triphenylphosphine oxide. In the 1H-31P decoupled NMR spectrum, the signals of the unreacted triphenylphosphine and the reacted triphenylphosphine oxide are detected at 7.4 ppm and 7.8 ppm, respectively. The ratio of the two signals is used for the calculation of the peroxide concentration. 108 oil samples with a peroxide value between 1 meq/kg and 150 meq/kg were examined using the developed method. Oils with a very low peroxide value of less than 3 meq/kg showed a relative standard deviation of 4.9%, highly oxidized oils with a peroxide value of 150 meq/kg of 0.2%. The NMR method was demonstrated as a powerful technique for the analysis of vegetable and krill oils. Another 1H NMR spectroscopic method was developed for the qualitative determination of Be2+, Sr2+ and Cd2+, and for the qualitative and quantitative determination of Ca2+, Mg2+, Hg2+, Sn2+, Pb2+ and Zn2+ by using ethylenediamine tetraacetate (EDTA) as complexing agent. EDTA is a hexadentate ligand that forms stable chelate complexes with divalent cations. The known amount of added EDTA and the signal ratio of free and complexed EDTA are used to calculate the concentrations of the divalent cations, which makes the use of an internal standard obsolete. The use of EDTA with Be2+, Sr2+, Cd2+, Ca2+, Mg2+, Hg2+, Sn2+, Pb2+ and Zn2+ result in complexes whose signals are pH-independent, showing cation-specific chemical shifts and couplings in the 1H NMR spectrum that are used for identification and quantification. In the presented NMR method, the limit of quantification of the cations Ca2+, Mg2+, Hg2+, Sn2+, Pb2+, and Zn2+ was determined with 5-22 μg/mL. This method is applicable in the food and drug sectors. The third NMR spectroscopic method introduced an alternative determination of the enantiomer excess (ee) of the chiral alcohols menthol, borneol, 1-phenylethanol and linalool using phosgene as a derivatizing reagent. Phosgene reacts with a chiral alcohol to form carboxylic acid diesters, made of two identical (RR, SS) or two different enantiomers (RS, SR). These two different types of diastereomers can be examined by the difference of their chemical shifts. In the presented method, the integration values of the carbonyl signals in the 13C NMR spectrum are used for the determination of the enantiomer excess. The limit of quantification depends, among others, on the sample and on the non-labelled or 13C-labelled phosgene used for the analysis. In the case of menthol, a quantification limit of ee=99.1% was determined using non-labelled phosgene and ee=99.9% using 13C-labelled phosgene. The 13C NMR method was also applied for the quality control of the enantiomeric purity of borneol, 1-phenylethanol and linalool. The developed 13C NMR method represents a powerful alternative to Mosher’s reagent for investigating the enantiomeric excess in chiral alcohols. This work demonstrates the variety of possibilities of applications for the quantitative nuclear magnetic resonance spectroscopy in the chemical analysis of drugs, food and chemicals using tagging reactions such as derivatizations and complexations. The nuclear resonance spectroscopic methods developed in this research work represent powerful alternatives to the previously used quality control techniques.
Liquid chromatography has become the gold standard for modern quality control and purity analytics since its establishment in the 1930s. However, some analytical questions remain very challenging even today. Several molecules and impurities do not possess a suitable chromophore for the application of UV detection or cannot be retained well on regular RP columns. Possible solutions are found in derivatization procedures, but they are time consuming and can be prone to errors. In order to detect non chromophore molecules underivatized, the concept of aerosol based universal detection was established with the introduction of the evaporative light scattering detector (ELSD) in the 1970s and the charged aerosol detector (CAD) followed in 2002. These two challenging fields – polar and non chromophore molecules – are tackled in this thesis.
An overview of applications of the CAD in the literature and a comparison to its aerosol based competitors and MS is presented, emphasizing on its high sensitivity and robustness. Parameters and techniques to overcome the drawbacks of CAD, such as the use of gradient compensation or adjusted evaporation temperatures are discussed. A consideration of aspects and drawbacks of data transformation such as the integrated power function value (PFV) in the GMP environment is performed.
A method for the fatty acid analysis in polysorbate 80 that was developed on HPLC CAD was transferred to UHPLC CAD. Time and eluent savings of over 75% and 40%, respectively, as well as ways to determine the optimal CAD parameters resulted from this investigation. The evaporation temperature was determined as the most crucial setting, which has to be adjusted with care. Optimal signal to noise ratios are found at a compromise between maintaining analyte signal and reducing background noise. The incorporation of semi volatile short chain fatty acids enabled the observation of differences based on volatility of the analyte. E.g. for semi volatiles, an improved linearity by means of adjusting the PFV is achieved at values below 1.0 instead of at elevated PFVs.
Using sugars and sugar related antibiotics, a proof-of-concept was given that artificial neural networks can describe correlations between the structure and physicochemical properties of molecules and their response in CAD. Quantitative structure property relationships obtained by design of experiment approaches were able to predict the response of unseen substances and yielded insights on the response generation of the detector, which heavily relies on the formed surface area of the dried particle. Further work can substantiate upon these findings, eventually building a library of diverse eluent compositions, analytes and settings.
In order to cope with a chromatographically challenging substances, the application of ion pairing reversed phase chromatography coupled to low wavelength UV detection has been shown as a possible approach for the amino acid L asparagine. A method capable of compendial purity analysis in one single HPLC approach, thus making the utilization of the semi quantitative TLC-ninhydrin analysis obsolete, resulted from this. One cyclic dipeptide impurity (diketoasparagine) that was formerly not assessed, could be identified in several batches and added to the monograph of the Ph.Eur.
Studying ibandronate sodium with CAD and ELSD, it was found that randomly occurring spike peaks represent a major flaw of the ELSD when high sample load is present. The research with this non chromophore bisphosphonate drug furthermore shed light on possible drawbacks of mixed mode chromatography methods and ways to overcome these issues. Due to strong adsorption of the analyte onto the column, over ten injections of the highly concentrated test solution were found to be necessary to ensure reproducible peak areas. Preconditioning steps should thus be evaluated for mixed mode approaches during method development and validation.
Last, using a ternary mixed mode stationary phase coupled to CAD, a method for the impurity profiling of pamidronate disodium, also applicable to the assessment of phosphate and phosphite in four other bisphosphonate drugs, has been developed. This represents a major advantage over the Ph.Eur. impurity profiling of pamidronate, which requires two different methods, one of which is only a semi quantitative TLC approach.
Der Gruppe der Macrogole sowie den darauf basierenden Abkömmlingen, den Macrogolfettalkoholethern, Macrogolfettsäureestern und Polysorbaten, kommt in der modernen Galenik eine wichtige Rolle zu. Dienten sie vormals nur als gewöhnliche Emulgatoren, so finden sie heutzutage vor allem im Bereich der gezielten Wirkstofffreisetzung, der Erhöhung der Bioverfügbarkeit sowie als Löslichkeitsvermittler komplexer Systeme Anwendung. Diese vielschichtigen Anwendungsgebiete erfordern, auch aufgrund der polydispersen Strukturen der Macrogole, eine reproduzierbare und aussagekräftige Analytik.
Das Europäische Arzneibuch (Ph. Eur.) bietet zur Charakterisierung der Hilfsstoffe eine Handvoll Messgrößen, die sog. Fettkennzahlen, die eine Größenordnung vorhandener funktioneller Gruppen liefern. Zu diesen gehören Werte wie Hydroxylzahl, Iodzahl, Peroxidzahl oder Säurezahl. Diese bieten zwar einen Überblick über den Größenbereich der mittleren Kettenlängen oder einen möglichen Abbau der Strukturen, beispielsweise durch Autoxidation, jedoch geben sie keine Auskunft über die Polymerverteilung. Insbesondere diese kann jedoch, je nach Herstellungsweise, stark variieren. Außerdem ist die Methodik der Fettkennzahlenbestimmungen aufgrund der strikten Reaktionsabläufe und zahlreicher Reaktionsschritte einerseits sehr zeitaufwändig und andererseits anfällig für Fehler.
Die HPLC hat, insbesondere aufgrund der Automation, bereits seit Jahren den Status des Goldstandards in der pharmazeutischen Analytik inne. Gekoppelt mit der UV-Detektion bietet sie für zahlreiche Wirkstoffe die Möglichkeit zur schnellen, einfachen und robusten Analyse. Im Bereich der Hilfsstoffe verbreitet sich die HPLC-Analytik langsamer, da viele Hilfsstoffe keinen Chromophor aufweisen. Eine Anwendung der hochsensitiven Massenspektrometrie wäre zwar zur Detektion geeignet, würde sich für die Routineanwendung jedoch als zu komplex und kostenintensiv gestalten. Doch mit der Entwicklung der Aerosol-basierten Detektoren wie dem ELSD (evaporative light scattering detector), dem CAD (charged aerosol detector) und dem NQADTM (nano quantity aerosol detector) wurde auch für nicht-chromophore Substanzen ein Einsatz der HPLC möglich.
Die vorliegende Arbeit befasste sich mit der Entwicklung einer HPLC-CAD-Methode, die eine möglichst große Bandbreite der Macrogole und der darauf basierenden Hilfsstoffe erfassen kann. Die Trennung erfolgte an einer C18-Trennsäule. Es wurde eine Gradienten-Methode entwickelt, die aus mehreren linearen Gradientenstufen zusammengesetzt wurde, um verschiedene Kettenlängen der Polymere besser voneinander zu trennen. Als mobile Phasen dienten Wasser und Acetonitril, denen jeweils 0.1 % Ameisensäure zugesetzt wurden.
Es konnten Macrogole im Bereich PEG 300 bis PEG 3000 mit akzeptabler Auflösung aufgetrennt werden. Diese Ergebnisse wurden für PEG 300 – 1500 mittels Massenspektrometrie verifiziert. Es konnten fünf gesättigte und zwei ungesättigte Fettsäuren, sowie zwei Fettalkohole verschiedener Kettenlängen voneinander getrennt werden. Es wurden 13 Macrogol-basierte Hilfsstoffe mit der entwickelten Methode untersucht und erfolgreich getrennt. Die Macrogolfettalkoholether, -stearate und Polysorbate wurden insoweit aufgetrennt, dass die Polymerverteilung beobachtet werden konnte.
Freie PEGs in den Hilfsstoffen wurden getrennt und identifiziert. Anhand dieser konnten unterschiedliche Herstellungsweisen zugeordnet werden. Abhängig von der mittleren Kettenlänge der verarbeiteten PEGs konnten teilweise die freien Fettsäuren bzw. -alkohole von den Estern bzw. Ethern getrennt und identifiziert werden. Im Bereich der kürzeren mittleren Kettenlängen wurden die freien Fettsäuren und -alkohole von den Estern und Ethern überlagert.
Macrogolglycerolhydroxystearat (Cremophor® RH40) wurde in seine Komponenten aufgetrennt, mit Ausnahme der linearen Monoester, die mit den freien PEGs partiell koeluierten und die Glyceroltriester, die Größenausschlusseffekte zeigten.
Die Methode wurde für Stabilitätsuntersuchungen der ungesättigten Fettsäuren, Öl- und Linolsäure, eingesetzt. Hierzu wurden diese Säuren in Lösung chemisch (Wasserstoffperoxid) und thermisch (60 °C) gestresst und in bestimmten Zeitabständen analysiert. Es zeigte sich ein zeit- und temperaturabhängiger Abbau. Die teilweise Zuordnung der Abbauprodukte erfolgte durch Bestimmung des m/z mittels Massenspektrometrie. Die Methode war geeignet, um das Ausmaß eines oxidativen Abbaus von der Hauptsubstanz zu trennen und strukturell einzuordnen.
Generell bietet die Methode eine gute Basis, die eine Vielzahl an Substanzgruppen erfassen und charakterisieren kann. Sie bietet eine Ergänzung der Fettkennzahlen, die einen verringerten Arbeitsaufwand mit sich bringt. Für spezifischere Betrachtungen (Langzeitstabilität, verwandte Substanzgruppen) stellt sie einen guten Ausgangspunkt dar.
Although the prevalence of substandard and counterfeit pharmaceutical products is a global problem, it is more critical in resource-constrained countries. The national medicines regulatory authorities (MNRA) in these countries have limited resources to cater for regular quality surveillance programmes aimed at ensuring that medicines in circulation are of acceptable quality. Among the reasons explained to hinder the implementation of these strategies is that compendial monographs are too complicated and require expensive infrastructures in terms of environment, equipment and consumables. In this study it was therefore aimed at developing simple, precise, and robust HPLC and HPTLC methods utilizing inexpensive, readily available chemicals (methanol and simple buffers) that can determine the APIs, other API than declared one, and which are capable of impurity profiling. As an outcome of this study, three isocratic and robust HPLC and two HPTLC methods for sulfadoxine, sulfalene, pyrimethamine, primaquine, artesunate, as well as amodiaquine have been developed and validated. All HPLC methods are operated using an isocratic elution mode which means they can be implemented even with a single pump HPLC system and standard C18 columns. The densitometric sulfadoxine/sulfalene and pyrimethamine method utilizes standard TLC plates as well as inexpensive, readily available and safe chemicals (toluene, methanol, and ethyl acetate), while that for artesunate and amodiaquine requires HPTLC plates as well as triethylamine and acetonitrile due to challenges associated with the analysis of amodiaquine and poorly the detectable artesunate. These HPTLC methods can be implemented as alternative to those requiring HPLC equipment e.g. in countries that already have acquired densitometer equipment. It is understood that HPTLC methods are less sensitive, precise and accurate when compared to HPLC methods, but this hindrance can easily be addressed by sending representative samples to third party quality control laboratories where the analytical results are verified using compendial HPLC methods on a regular basis.
It is therefore anticipated that the implementation of these methods will not only address the problem of limited resources required for medicines quality control but also increase the number of monitored targeted antimalarial products as well as the number of resource- constrained countries participating in quality monitoring campaigns. Moreover, the experiences and skills acquired within this work will be applied to other API groups, e. g. antibiotics, afterwards.
The requirements for the impurity profiling of substances for pharmaceutical use have become greater over time. They can be accomplished by the use of modern instrumental analysis techniques, which have been evolved in the last decades. New types of columns with HILIC, mixed-mode and chiral stationary phases are suitable for the separation of all kinds of substances mixtures, that were previously hardly possible with the use of common reversed phase columns. Modern, almost universal detectors like CAD, ELSD and CNLSD can be applied for a sensitive detection of substances without a chromophore. However, in addition to some small individual disadvantages to these methods, the costs are high and applications are still kind of rare. Thus, the introduction of these devices at a broader level has not yet taken place. While this presumably will change over time, there is a need for methods that enable the impurity profiling of challenging substances with widespread analytics devices.
Methionine is a substance with hydrophobic and hydrophilic impurities. With the help of a mixed-mode stationary phase, which is a combination of a reversed phase and a strong cationic exchanger, the separation of all putative impurities was found possible with good sensitivity and selectivity. The method requires apart from the column only standard isocratic HPLC equipment and was successfully validated.
The evaluation of the enantiomeric purity of amino acids is challenging. Two approaches were made. The first method utilizes CE by means of in-capillary derivation with OPA and the subsequent separation with a cyclodextrin. With the use of OPA/NAC and γ-cyclodextrin, a simple and cost-effective method for the indirect enantioseparation of 16 amino acids was developed. With the second approach, racemic amino acids can be analyzed with HPLC and in-needle derivatization. For this, different columns and chiral thiols were evaluated and the chromatographic parameters were optimized. A method with OPA/NIBLC, a pentafluorophenyl column made the enantioseparation of 17 amino acids feasible. A LOQ of the minor enantiomer down to 0.04 % can be achieved with UV spectrophotometric detection. A similar method was developed for impurity profiling of L-amino acids. This can be used alternatively for the amino acid analysis performed by the European Pharmacopoeia.
A simple, robust, precise and accurate method for the evaluation of impurities in glyceryl trinitrate solution was developed and validated. The four impurities of glyceryl trinitrate are separated by means of an acetonitrile-water gradient and the assay for this substance is also possible.
The Corona® charged aerosol detector (CAD) is an aerosol-based detector first de-scribed by Dixon and Peterson in 2002. It is capable of detecting compounds inde-pendent from their physico-chemical properties presumed the analyte is sufficiently non-volatile. Consequently, the CAD is often applied to the analysis of substances that do not possess a suitable UV chromophore. Major drawbacks are however, the detector signal is non-linear and depending on the content of organic solvent in the mobile phase.
This thesis tried to explore possible applications of the CAD for pharmaceutical analysis. Therefore, several substances from different compound classes were in-vestigated. Newly developed or existing methods were validated. Thus the perfor-mance of the CAD could be examined. Both assay and impurity determination were evaluated for their compliance with ICH Q2(R1) “Validation of Analytical Proce-dures” and the “Technical Guide for the Elaboration of Monographs”.
In the course of the establishment of reference substances at the EDQM, a generic screening method for the identification of organic and inorganic pharmaceutical counterions was needed. An HPLC-CAD method developed by Zhang et al. was therefore investigated for its suitability for pharmacopoeial purpose. Method valida-tion was performed. It was found that 23 ions could be separated and detected. Iden-tification was achieved via retention time of an authentic standard of the corre-sponding ions. Alternatively, peak assignment was performed by determination of the exact mass using TOF-MS. Ions could be quantified as impurities or for stoichi-ometric purpose.
For the impurity control in topiramate, the performance characterstics of the CAD were compared to that of an ELSD. CAD was superior to ELSD in terms of repeata-bility, sensitivity and linearity. However, impurities could be quantified with satisfac-tory accuracy with both detectors. The application of the ELSD was not feasible due to non-reproducible spike peaks eluting after the principle peak in the chromatogram of the test solution. One of the impurities, topiramate impurity A (diacetonide), gave no or a vastly diminished signal in the ELSD and the CAD, respectively. It is evapo-rated during the detection process due to its relatively high vapor pressure. The re-sponse could be enhanced by a factor of nine via post-column addition of acetoni-trile and a lower nebulizer temperature. As the response of topiramate impurity A was still about thousand-fold lower than the response of all other impurities, its quantification was not feasible. Additionally, the HPLC-CAD was successfully vali-dated as an assay procedure for topiramate.
There seems to be a great potential in the application of the CAD to the analysis of excipients as most compounds do not possess a suitable UV chromophore. Here, a simple and rapid HPLC-CAD method for the determination of polidocanol (PD) was developed. The method was successfully validated as a potential assay procedure for the Ph. Eur. as none is described in either of the two PD monographs. The same method was applied to the determination of the PD release from a pharmaceutical polymer matrix.
A method for the determination of the fatty acid (FA) composition of polysorbate 80 (PS80) was developed and validated. Using the CAD and mass spectrometry, we were able to identify two new FAs in 16 batches from four manufacturers. All batch-es complied with pharmacopoeial specification. Furthermore, the overall composi-tion of the different PS80 species (“fingerprinting”) and the peroxide content were determined. In addition to the chemical characterization, functionality related charac-teristics (FRCs) were determined. Correlations between chemical composition and FRCs were found.
The validation data of the above mentioned methods suggests that the CAD repre-sents a viable detection technique for pharmaceutical analysis. The CAD was suffi-ciently sensitive for non-volatile analytes. Impurity control down to concentrations of 0.05 or 0.03%, as demanded by ICH Q3A (R2), is achievable. However, the response of semi-volatile compounds may be drastically diminished. It could be confirmed that the response of the CAD is linear when the range does not exceed two orders of magnitude. Exceptions may be observed depending on the actual method setup. When the measuring range is sufficiently narrow, quantification can be done using single-point calibration which is common practice in pharmaceutical anlysis. Impuri-ties may also be quantified against a single calibration solution. However, correction factors may be needed and the accuracy is considerably lower compared to an as-say method. If a compound is to be quantified over a large concentration range, log-log transformation of the calibration curve is needed and a decreased accuracy has to be accepted.
Glucocorticoide werden in der Herzschrittmachertherapie eingesetzt, um einen Anstieg der Reizschwelle nach der Implantation des Schrittmachers zu verringern und dauerhaft auf niedrigerem Niveau zu halten, als dies ohne Glucocorticoid-Behandlung der Fall wäre. Die Applikation der zu diesem Zweck eingesetzten Glucocorticoide Dexamethasonacetat (DXA) und Dexamethasonphosphat, in seltenen Fällen auch Beclomethasondipropionat (BDP), erfolgt dabei in der Regel mittels einem an der Elektrodenspitze angebrachten Matrixsystem, das für eine langsame lokale Freisetzung der Arzneistoffe an der Grenzfläche zwischen kathodischem Elektrodenkontakt und Herzgewebe sorgen soll. Diese Anwendungsform ist speziell, da trotz einer systemischen Freisetzung der Substanzen eine lokale Wirkung erzielt werden soll, welche die Funktion des Schrittmachers als Medizinprodukt unterstützen soll – aus pharmakokinetischer Sicht ein wichtiger Unterschied zu den üblichen topischen Glucocorticoid Anwendungen. Unter physiologischen Bedingungen wurde diese Applikationsform hinsichtlich der Arzneistofffreisetzung und anschließender Umverteilung mit Bindung der Glucocorticoide an das kardiale Gewebe bislang ebenso wenig untersucht, wie verschiedene Glucocorticoide in dieser Anwendung hinsichtlich ihrer Pharmakokinetik verglichen wurden. In der vorliegenden Arbeit wurden deshalb die pharmakokinetischen Vorgänge der drei Glucocorticoide DXA, BDP und des potentiell einsetzbaren Glucocorticoids GCX (dessen Identität aus patentgründen derzeit nicht offengelegt werden kann) untersucht. Die Freisetzungssysteme enthielten, je nach Glucocorticoid, Arzneistoffdosen im Bereich von etwa 150 bis 260 µg. In einem in-vitro Freisetzungsmodell in Methanol wurde zunächst bestätigt, dass sich die Freisetzungskinetik der untersuchten Matrizes gemäß den Modellvorstellung zu einem dünnwandigen monolithischen Freisetzungssystem nach dem Quadratwurzelgesetz beschreiben ließ. DXA wurde mit einer Freisetzungsrate von 55,6 ± 1,9 µg/h1/2 in 24 Stunden annähernd vollständig freigesetzt, während die Rate für BDP bei 21,8 ± 0,7 µg/h1/2 lag und nur für eine Freisetzung von etwa zwei Dritteln des Gesamtgehalts der Freisetzungsmatrix sorgte. GCX wurde gar mit nur 4,2 ± <0,1 µg/h1/2 freigesetzt. Die ermittelten Freisetzungsraten (DXA > BDP >>> GCX) waren überraschenderweise nicht konsistent mit den logP-Werten der Substanzen. Dies wies darauf hin, dass nicht alleine die unterschiedlichen physikochemischen Eigenschaften der Substanzen zu den differierenden Freisetzungsprofile führten, sondern wohl auch die Formulierung der Silikonmatrix einen starken Einfluss ausübte – eine wichtige Erkenntnis für die Weiterentwicklung derartiger Glucocorticoid haltiger Matrixfreisetzungssysteme. Vor allem während der bis zu 4 wöchigen Phase unmittelbar nach der Elektrodenimplantation ist die Matrix dem Blutstrom ausgesetzt, bevor sich als Reaktion des Organismus auf den implantierten Fremdkörper eine fibröse Hülle um die Elektrodenspitze bildet. Zur Annäherung an die physiologischen Freisetzungsverhältnisse in dieser initialen Phase, in nach dem Quadratwurzelgesetz die mengenmäßig stärkste Glucocorticoid-Freisetzung erfolgen sollte, wurden deshalb erstmals Freisetzungsversuche in Humanplasma über 28 Tage durchgeführt. Mit einer Freisetzungsrate von 2,26 ± 0,08 µg/h1/2 wurde hier eine unerwartet starke Freisetzung von BDP beobachtet, wohingegen diese für DXA und GCX mit Raten von 0,39 ± 0,03 µg/h1/2 und 0,42 ± 0,01 µg/h1/2 deutlich langsamer ausfiel und sich kaum voneinander unterschied. Die Reihenfolge der Freisetzungsgeschwindigkeiten (BDP >>> GCX = DXA) unterschied sich somit unter physiologischen Bedingungen gänzlich von den in-vitro Bedingungen. Womöglich kamen im wässrigen Freisetzungsmedium Humanplasma dabei die Formulierungseinflüsse verstärkt zum Tragen, die sich bereits unter den in-vitro Bedingungen andeutenden. Ein zusätzlicher Einfluss mochte von der Bildung des 9,11 Epoxy Belcomethasons als Abbauprodukt des BDP ausgegangen sein, welches unter den physiologisch angenäherten Bedingungen in hohem Ausmaß entstand. Dies führte zu einer Stabilitätsuntersuchung von Beclomethason in Humanplasma und verschiedenen Puffersystemen, bei welcher sich ein stabilitätsmindernder Einfluss von Carbonat-Puffersystemen herausstellte. Im Zuge der Freisetzungsversuche in Humanplasma wurde zudem erstmals die Entstehung von 17 Oxo Dexamethason als Abbauprodukt von DXA beobachtet und durch Nachsynthese bestätigt. Für die Phase der Herzschrittmachertherapie, in der an der Grenzfläche zwischen Elektrode und Herzgewebe eine lokale und akute Entzündung infolge der Implantation der Schrittmacherelektrode auftritt und üblicherweise ein starker Anstieg der Reizschwelle zu beobachten ist, lieferten die Versuche in Humanplasma somit erstmals Daten zur Freisetzung verschiedener Glucocorticoide unter Einbezug angenäherter physiologischer Verhältnisse. Für die korrekte Durchführung der Freisetzungsversuche ist das Vorliegen von Sink Bedingungen essentiell. Da die praktische Löslichkeit von Glucocorticoiden in Humanplasma bislang nicht bekannt war, wurde die Aufnahmekapazität des Humanplasmas (Kombination aus Löslichkeit und Plasmaproteinbindung) für DXA, GCX und BDP untersucht. Sink Bedingungen konnten für alle Substanzen sichergestellt werden, wobei gegenüber der reinen Wasserlöslichkeit eine deutlich höhere Aufnahmekapazität gezeigt werden konnte und den hohen Einfluss der Proteinbindung hervorhob. Um die insgesamt herrschenden physiologischen Verhältnisse noch besser zu beschreiben und dabei die Umverteilung der Arzneistoffe nach Freisetzung aus dem Implantat an das Zielgewebe zu untersuchen, wurde ein neuartiges ex-vivo Modell entwickelt. Dies erlaubte eine Simulation der Arzneistofffreisetzung aus dem Implantat in Gegenwart eines Gewebekompartiments und berücksichtigte eine flussartige Konvektion des Mediums. Mit diesem Modell wurden Verhältnisse der AUCs der Glucocorticoide zwischen Gewebe und Humanplasma ermittelt, die mit Werten von 3,4 für DXA, 3,8 für BDP und 2,5 für GCX auf eine ausgeprägte Umverteilung aus dem Humanplasma in das Gewebe hinwiesen. Insgesamt schien damit aufgrund der raschen Freisetzung und Diffusion in das Gewebe eine Verwendung von BDP zur Bekämpfung einer lokalen akuten Entzündung unmittelbar nach der Implantation aus pharmakokinetischer Sicht vorteilhaft. Mit Blick auf einen jahrelangen Effekt konnte jedoch auch die langsame Freisetzung von DXA und GCX mit deren sehr stabilen Wirkformen als vorteilhaft diskutiert werden. Die Versuche können letztlich bei der Auswahl eines möglichst idealen Glucocorticoids für die Herzschrittmachertherapie behilflich sein und bieten erstmals ein weitestgehend physiologisches Untersuchungsmodell für diese Applikationsform. Inwiefern sich die unterschiedliche Pharmakokinetik der drei Glucocorticoide auch in pharmakodynamischer Sicht auswirken könnte, sollte schließlich im Zellkulturmodell untersucht werden. Zuvor wurde jedoch in-vitro getestet, ob sich der elektrische Schrittmacherimpuls selbst als Entzündungsreiz bemerkbar machen und damit einen Hinweis auf eine dadurch hervorgerufene dauerhafte Entzündung des Herzgewebes geben würde. Dazu wurde eigens ein Modell entworfen, das die Applikation des elektrischen Stimulus in einem Zellkulturansatz zuließ. Die Messung der Entzündungsmarker IL-6, IL-8, MMP-9 und MCP-1 ließ keine entzündliche Reizung der Zellen durch einen Schrittmacherimpuls in Höhe von 1 V und 0,5 ms Dauer erkennen. Anschließend wurde untersucht, ob sich die selbst ermittelten pharmakokinetischen Unterschiede der drei Glucocorticoide in der akuten Entzündungsphase nach Elektrodenimplantation in-vitro in unterscheidbaren biologischen Aktivitäten auswirken würden. Signifikante Unterschiede in der Inhibition der Sekretion der Entzündungsmarker IL-6 und MMP 9 konnten allerdings trotz der unterschiedlichen freigesetzten Dosen an DXA, GCX und BDP nicht beobachtet werden. Somit erwies sich keine der drei Substanzen, trotz unterschiedlicher pharmakokinetischer Voraussetzungen und Affinitäten zum Glucocorticoid-Rezeptor, als überlegen. In einem ersten Ausblick ließ dies für die klinische Anwendung von GCX und BDP – zumindest in der initialen Phase nach Elektrodenimplantation – einen zu DXA vergleichbaren Einfluss auf die Reizschwelle vermuten. Neben einer antiinflammatorischen Wirkung wird auch eine Minderung des Reizschwellenanstieges durch eine bei Glucocorticoid Exposition nur dünn ausgeprägte fibröse Kapsel an der Elektrodenspitze diskutiert. Als Beitrag zur Untersuchung der in der klinischen Praxis beobachteten Wirkung des DXA wurde daher abschließend geprüft, ob die freigesetzten Glucocorticoid Dosen zu einer Proliferationshemmung von Endothelzellen und Fibroblasten führen konnten. Ein vermindertes Wachstum der Zelllinien EA.hy926 und IMR-90 unter den freigesetzten Glucocorticoid Dosen konnte jedoch nicht beobachtet werden. Künftige Untersuchungen des Einflusses der Glucocorticoide auf die Synthese einzelner Bindegewebsbestandteile wie Kollagen könnten hierzu womöglich weitere Erkenntnisse liefern. In der vorliegenden Arbeit wurde erstmals erfolgreich die Pharmakokinetik dreier Glucocorticoide im Kontext der Herzschrittmachertherapie unter physiologischen Verhältnissen beschrieben und ein neuartiges ex-vivo Modell entwickelt, das zukünftig ein hilfreiches Werkzeug zur Untersuchung der Pharmakokinetik von kardiovaskulären Implantaten sein kann. Darauf aufbauend wurde zudem erstmalig die Pharmakodynamik dieser Glucocorticoide in der Herzschrittmachertherapie verglichen und begonnen, den Glucocorticoid Effekt in der Herzschrittmachertherapie näher zu beleuchten.